Rate-dependent fracture of transient networks

被引:35
作者
Shen, Tong [1 ]
Vernerey, Franck J. [1 ]
机构
[1] Univ Colorado, Dept Mech Engn, Program Mat Sci & Engn, Boulder, CO 80309 USA
基金
美国国家科学基金会;
关键词
Rate-dependent fracture; Viscoelasticity; Crack driving force; Finite element analysis; Transient networks; CROSS-LINK GELS; POLYMER NETWORKS; VISCOELASTIC PROPERTIES; BRITTLE-FRACTURE; HYDROGELS; TOUGH; CRACK; MODEL; PROPAGATION; BEHAVIOR;
D O I
10.1016/j.jmps.2020.104028
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Soft viscoelastic polymers and gels are commonly used a wide range of applications owing to their softness and the ability to accommodate large deformations. Their applicability is however often limited by their tendency to fracture in ways that are cannot be predicted by conventional elastic fracture mechanics. Our understanding of fracture in this class of solid has particularly been hindered by the incapacity of determining the competition viscous flow and fracture under finite strains. To tackle this problem, this paper presents a framework that quantitatively captures the interplay between energy dissipation and crack propagation in soft solids made of a single transient network. Using a combined analytical and numerical study, we investigate the dynamics of crack propagation at various loading rates and for networks that display different sensitivities to force. Our results point out to four different crack characteristic behaviors, for which we unveiled the respective mechanisms, all involving a strong interplay between chain deformation, bond dynamics and rupture. (C) 2020 Published by Elsevier Ltd.
引用
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页数:21
相关论文
共 84 条
[1]   Strong fiber-reinforced hydrogel [J].
Agrawal, Animesh ;
Rahbar, Nima ;
Calvert, Paul D. .
ACTA BIOMATERIALIA, 2013, 9 (02) :5313-5318
[2]   Tuning tissue growth with scaffold degradation in enzyme-sensitive hydrogels: a mathematical model [J].
Akalp, Umut ;
Bryant, Stephanie J. ;
Vernerey, Franck J. .
SOFT MATTER, 2016, 12 (36) :7505-7520
[3]   Fracture R-curve characterization of toughened epoxy adhesives [J].
Ameli, A. ;
Papini, M. ;
Schroeder, J. A. ;
Spelt, J. K. .
ENGINEERING FRACTURE MECHANICS, 2010, 77 (03) :521-534
[4]   Interplay of elastic instabilities and viscoelasticity in the finite deformation of thin membranes [J].
Benet, Eduard ;
Zhu, Hongtian ;
Vernerey, Franck J. .
PHYSICAL REVIEW E, 2019, 99 (04)
[5]   Constitutive modeling of the large strain time-dependent behavior of elastomers [J].
Bergstrom, JS ;
Boyce, MC .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 1998, 46 (05) :931-954
[6]   TIME-DEPENDENT MECHANICAL BEHAVIOR OF CARBON BLACK FILLED ELASTOMERS [J].
Bhattacharya, Aparajita ;
Medvedev, Grigori A. ;
Caruthers, James M. .
RUBBER CHEMISTRY AND TECHNOLOGY, 2011, 84 (03) :296-324
[7]  
Bin Ihsan A., 2013, J. Mater. Chem. B, V1, P4555, DOI DOI 10.1039/C3TB20790K
[8]   Effect of Solvent Diffusion on Crack-Tip Fields and Driving Force for Fracture of Hydrogels [J].
Bouklas, Nikolaos ;
Landis, Chad M. ;
Huang, Rui .
JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 2015, 82 (08)
[9]   Programmable Hydrogels for Cell Encapsulation and Neo-Tissue Growth to Enable Personalized Tissue Engineering [J].
Bryant, Stephanie J. ;
Vernerey, Franck J. .
ADVANCED HEALTHCARE MATERIALS, 2018, 7 (01)
[10]   Rate-dependent fracture at adhesive interface [J].
Chaudhury, MK .
JOURNAL OF PHYSICAL CHEMISTRY B, 1999, 103 (31) :6562-6566